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通过固定化金属亲和层析法对大肠杆菌 BL21(DE3)衍生菌株进行工程改造,以最大程度减少蛋白纯化后的大肠杆菌污染。

Engineering Escherichia coli BL21(DE3) derivative strains to minimize E. coli protein contamination after purification by immobilized metal affinity chromatography.

机构信息

New England BioLabs, Inc., Gene Expression Division, 240 County Road, Ipswich, MA 01938, USA.

出版信息

Appl Environ Microbiol. 2011 Jul;77(13):4634-46. doi: 10.1128/AEM.00119-11. Epub 2011 May 20.

Abstract

Recombinant His-tagged proteins expressed in Escherichia coli and purified by immobilized metal affinity chromatography (IMAC) are commonly coeluted with native E. coli proteins, especially if the recombinant protein is expressed at a low level. The E. coli contaminants display high affinity to divalent nickel or cobalt ions, mainly due to the presence of clustered histidine residues or biologically relevant metal binding sites. To improve the final purity of expressed His-tagged protein, we engineered E. coli BL21(DE3) expression strains in which the most recurring contaminants are either expressed with an alternative tag or mutated to decrease their affinity to divalent cations. The current study presents the design, engineering, and characterization of two E. coli BL21(DE3) derivatives, NiCo21(DE3) and NiCo22(DE3), which express the endogenous proteins SlyD, Can, ArnA, and (optionally) AceE fused at their C terminus to a chitin binding domain (CBD) and the protein GlmS, with six surface histidines replaced by alanines. We show that each E. coli CBD-tagged protein remains active and can be efficiently eliminated from an IMAC elution fraction using a chitin column flowthrough step, while the modification of GlmS results in loss of affinity for nickel-containing resin. The "NiCo" strains uniquely complement existing methods for improving the purity of recombinant His-tagged protein.

摘要

在大肠杆菌中表达的重组 His 标签蛋白,并通过固定化金属亲和层析(IMAC)进行纯化,通常与天然的大肠杆菌蛋白共洗脱,特别是如果重组蛋白表达水平较低。大肠杆菌污染物对二价镍或钴离子具有高亲和力,主要是由于存在聚集的组氨酸残基或生物学相关的金属结合位点。为了提高表达的 His 标签蛋白的最终纯度,我们对大肠杆菌 BL21(DE3)表达菌株进行了工程改造,其中最常见的污染物要么带有替代标签表达,要么突变以降低它们对二价阳离子的亲和力。本研究介绍了两种大肠杆菌 BL21(DE3)衍生物 NiCo21(DE3)和 NiCo22(DE3)的设计、工程改造和表征,它们在 C 端融合了内源性蛋白 SlyD、Can、ArnA 和(可选)AceE 的 CBD 结构域,以及表面组氨酸被替换为丙氨酸的 GlmS 蛋白。我们表明,每种大肠杆菌 CBD 标签蛋白仍然保持活性,并可以通过使用壳聚糖柱流穿步骤从 IMAC 洗脱部分中有效地去除,而 GlmS 的修饰导致对含镍树脂的亲和力丧失。“NiCo”菌株独特地补充了提高重组 His 标签蛋白纯度的现有方法。

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